hdallatorre
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Update README.md
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README.md
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@@ -42,6 +42,11 @@ import torch
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tokenizer = AutoTokenizer.from_pretrained("InstaDeepAI/nucleotide-transformer-v2-100m-multi-species", trust_remote_code=True)
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model = AutoModelForMaskedLM.from_pretrained("InstaDeepAI/nucleotide-transformer-v2-100m-multi-species", trust_remote_code=True)
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# Create a dummy dna sequence and tokenize it
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sequences = ["ATTCCGATTCCGATTCCG", "ATTTCTCTCTCTCTCTGAGATCGATCGATCGAT"]
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tokens_ids = tokenizer.batch_encode_plus(sequences, return_tensors="pt", padding="max_length", max_length = max_length)["input_ids"]
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tokenizer = AutoTokenizer.from_pretrained("InstaDeepAI/nucleotide-transformer-v2-100m-multi-species", trust_remote_code=True)
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model = AutoModelForMaskedLM.from_pretrained("InstaDeepAI/nucleotide-transformer-v2-100m-multi-species", trust_remote_code=True)
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# Choose the length to which the input sequences are padded. By default, the
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# model max length is chosen, but feel free to decrease it as the time taken to
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# obtain the embeddings increases significantly with it.
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max_length = tokenizer.model_max_length
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# Create a dummy dna sequence and tokenize it
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sequences = ["ATTCCGATTCCGATTCCG", "ATTTCTCTCTCTCTCTGAGATCGATCGATCGAT"]
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tokens_ids = tokenizer.batch_encode_plus(sequences, return_tensors="pt", padding="max_length", max_length = max_length)["input_ids"]
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